Add files using upload-large-folder tool
Browse files- README.md +21 -0
- config.json +38 -0
- config.yml +228 -0
- measurement.json +0 -0
- model.safetensors.index.json +1 -0
- output-00001-of-00006.safetensors +3 -0
- output-00002-of-00006.safetensors +3 -0
- output-00003-of-00006.safetensors +3 -0
- output-00004-of-00006.safetensors +3 -0
- output-00005-of-00006.safetensors +3 -0
- output-00006-of-00006.safetensors +3 -0
- special_tokens_map.json +23 -0
- tokenizer.json +0 -0
- tokenizer.model +3 -0
- tokenizer_config.json +0 -0
- upload.py +45 -0
README.md
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---
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license: other
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---
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Quantized model => https://huggingface.co/TheDrummer/Behemoth-123B-v1.1
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**Quantization Details:**
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Quantization is done using turboderp's ExLlamaV2 v0.2.3.
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I use the default calibration datasets and arguments. The repo also includes a "measurement.json" file, which was used during the quantization process.
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For models with bits per weight (BPW) over 6.0, I default to quantizing the `lm_head` layer at 8 bits instead of the standard 6 bits.
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---
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**Who are you? What's with these weird BPWs on [insert model here]?**
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I specialize in optimized EXL2 quantization for models in the 70B to 100B+ range, specifically tailored for 48GB VRAM setups. My rig is built using 2 x 3090s with a Ryzen APU (APU used solely for desktop output—no VRAM wasted on the 3090s). I use TabbyAPI for inference, targeting context sizes between 32K and 64K.
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Every model I upload includes a `config.yml` file with my ideal TabbyAPI settings. If you're using my config, don’t forget to set `PYTORCH_CUDA_ALLOC_CONF=backend:cudaMallocAsync` to save some VRAM.
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config.json
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{
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"_name_or_path": "BeaverAI/Behemoth-123B-v1e",
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"architectures": [
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"MistralForCausalLM"
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],
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"attention_dropout": 0.0,
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"bos_token_id": 1,
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"eos_token_id": 2,
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"head_dim": 128,
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"hidden_act": "silu",
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"hidden_size": 12288,
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"initializer_range": 0.02,
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"intermediate_size": 28672,
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"max_position_embeddings": 131072,
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"model_type": "mistral",
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"num_attention_heads": 96,
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"num_hidden_layers": 88,
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"num_key_value_heads": 8,
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"rms_norm_eps": 1e-05,
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"rope_theta": 1000000.0,
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"sliding_window": null,
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"tie_word_embeddings": false,
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"torch_dtype": "bfloat16",
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"transformers_version": "4.45.2",
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"use_cache": true,
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"vocab_size": 32768,
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"quantization_config": {
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"quant_method": "exl2",
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"version": "0.2.3",
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"bits": 2.85,
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"head_bits": 6,
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"calibration": {
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"rows": 115,
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"length": 2048,
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"dataset": "(default)"
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}
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}
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}
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config.yml
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# Sample YAML file for configuration.
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# Comment and uncomment values as needed. Every value has a default within the application.
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# This file serves to be a drop in for config.yml
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# Unless specified in the comments, DO NOT put these options in quotes!
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# You can use https://www.yamllint.com/ if you want to check your YAML formatting.
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# Options for networking
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network:
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# The IP to host on (default: 127.0.0.1).
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# Use 0.0.0.0 to expose on all network adapters
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host: 0.0.0.0
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# The port to host on (default: 5000)
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port: 5000
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# Disable HTTP token authenticaion with requests
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# WARNING: This will make your instance vulnerable!
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# Turn on this option if you are ONLY connecting from localhost
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disable_auth: False
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# Send tracebacks over the API to clients (default: False)
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# NOTE: Only enable this for debug purposes
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send_tracebacks: False
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# Select API servers to enable (default: ["OAI"])
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# Possible values: OAI
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api_servers: ["OAI"]
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# Options for logging
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logging:
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# Enable prompt logging (default: False)
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prompt: False
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# Enable generation parameter logging (default: False)
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generation_params: False
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# Enable request logging (default: False)
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# NOTE: Only use this for debugging!
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requests: False
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# Options for sampling
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sampling:
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# Override preset name. Find this in the sampler-overrides folder (default: None)
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# This overrides default fallbacks for sampler values that are passed to the API
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# Server-side overrides are NOT needed by default
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# WARNING: Using this can result in a generation speed penalty
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#override_preset:
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# Options for development and experimentation
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developer:
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# Skips exllamav2 version check (default: False)
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# It's highly recommended to update your dependencies rather than enabling this flag
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# WARNING: Don't set this unless you know what you're doing!
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#unsafe_launch: False
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# Disable all request streaming (default: False)
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# A kill switch for turning off SSE in the API server
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#disable_request_streaming: False
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# Enable the torch CUDA malloc backend (default: False)
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# This can save a few MBs of VRAM, but has a risk of errors. Use at your own risk.
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cuda_malloc_backend: True
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# Enable Uvloop or Winloop (default: False)
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# Make the program utilize a faster async event loop which can improve performance
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# NOTE: It's recommended to enable this, but if something breaks, turn this off.
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uvloop: True
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# Set process to use a higher priority
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# For realtime process priority, run as administrator or sudo
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# Otherwise, the priority will be set to high
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realtime_process_priority: True
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# Options for model overrides and loading
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# Please read the comments to understand how arguments are handled between initial and API loads
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model:
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# Overrides the directory to look for models (default: models)
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# Windows users, DO NOT put this path in quotes! This directory will be invalid otherwise.
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model_dir: models
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# Sends dummy model names when the models endpoint is queried
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# Enable this if the program is looking for a specific OAI model
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#use_dummy_models: False
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# An initial model to load. Make sure the model is located in the model directory!
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# A model can be loaded later via the API.
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# REQUIRED: This must be filled out to load a model on startup!
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model_name: Behemoth-123B-v1.1_exl2_2.85bpw
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# The below parameters only apply for initial loads
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# All API based loads do NOT inherit these settings unless specified in use_as_default
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# Names of args to use as a default fallback for API load requests (default: [])
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# For example, if you always want cache_mode to be Q4 instead of on the inital model load,
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# Add "cache_mode" to this array
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# Ex. ["max_seq_len", "cache_mode"]
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#use_as_default: []
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# The below parameters apply only if model_name is set
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# Max sequence length (default: Empty)
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# Fetched from the model's base sequence length in config.json by default
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max_seq_len: 32768
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# Overrides base model context length (default: Empty)
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# WARNING: Don't set this unless you know what you're doing!
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# Again, do NOT use this for configuring context length, use max_seq_len above ^
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# Only use this if the model's base sequence length in config.json is incorrect (ex. Mistral 7B)
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#override_base_seq_len:
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# Load model with tensor parallelism
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# If a GPU split isn't provided, the TP loader will fallback to autosplit
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# Enabling ignores the gpu_split_auto and autosplit_reserve values
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#tensor_parallel: True
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# Automatically allocate resources to GPUs (default: True)
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# NOTE: Not parsed for single GPU users
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gpu_split_auto: True
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# Reserve VRAM used for autosplit loading (default: 96 MB on GPU 0)
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# This is represented as an array of MB per GPU used
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autosplit_reserve: [0]
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# An integer array of GBs of vram to split between GPUs (default: [])
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# Used with tensor parallelism
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# NOTE: Not parsed for single GPU users
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#gpu_split: [20.6, 24]
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# Rope scale (default: 1.0)
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# Same thing as compress_pos_emb
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# Only use if your model was trained on long context with rope (check config.json)
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# Leave blank to pull the value from the model
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#rope_scale: 1.0
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# Rope alpha (default: 1.0)
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# Same thing as alpha_value
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# Leave blank to automatically calculate alpha
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#rope_alpha: 1.0
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# Enable different cache modes for VRAM savings (slight performance hit).
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# Possible values FP16, Q8, Q6, Q4. (default: FP16)
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cache_mode: Q4
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# Size of the prompt cache to allocate (default: max_seq_len)
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# This must be a multiple of 256. A larger cache uses more VRAM, but allows for more prompts to be processed at once.
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# NOTE: Cache size should not be less than max_seq_len.
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# For CFG, set this to 2 * max_seq_len to make room for both positive and negative prompts.
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# cache_size:
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# Chunk size for prompt ingestion. A lower value reduces VRAM usage at the cost of ingestion speed (default: 2048)
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# NOTE: Effects vary depending on the model. An ideal value is between 512 and 4096
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chunk_size: 1024
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# Set the maximum amount of prompts to process at one time (default: None/Automatic)
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# This will be automatically calculated if left blank.
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# A max batch size of 1 processes prompts one at a time.
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# NOTE: Only available for Nvidia ampere (30 series) and above GPUs
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#max_batch_size:
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# Set the prompt template for this model. If empty, attempts to look for the model's chat template. (default: None)
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# If a model contains multiple templates in its tokenizer_config.json, set prompt_template to the name
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# of the template you want to use.
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# NOTE: Only works with chat completion message lists!
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#prompt_template:
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# Number of experts to use PER TOKEN. Fetched from the model's config.json if not specified (default: Empty)
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# WARNING: Don't set this unless you know what you're doing!
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# NOTE: For MoE models (ex. Mixtral) only!
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#num_experts_per_token:
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# Enables fasttensors to possibly increase model loading speeds (default: False)
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fasttensors: true
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# Options for draft models (speculative decoding). This will use more VRAM!
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#draft:
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# Overrides the directory to look for draft (default: models)
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#draft_model_dir: models
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# An initial draft model to load. Make sure this model is located in the model directory!
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# A draft model can be loaded later via the API.
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#draft_model_name: A model name
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# The below parameters only apply for initial loads
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# All API based loads do NOT inherit these settings unless specified in use_as_default
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# Rope scale for draft models (default: 1.0)
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# Same thing as compress_pos_emb
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# Only use if your draft model was trained on long context with rope (check config.json)
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#draft_rope_scale: 1.0
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# Rope alpha for draft model (default: 1.0)
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# Same thing as alpha_value
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# Leave blank to automatically calculate alpha value
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#draft_rope_alpha: 1.0
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# Enable different draft model cache modes for VRAM savings (slight performance hit).
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# Possible values FP16, Q8, Q6, Q4. (default: FP16)
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#draft_cache_mode: FP16
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# Options for loras
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#lora:
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# Overrides the directory to look for loras (default: loras)
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#lora_dir: loras
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# List of loras to load and associated scaling factors (default: 1.0). Comment out unused entries or add more rows as needed.
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#loras:
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#- name: lora1
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# scaling: 1.0
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# Options for embedding models and loading.
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212 |
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# NOTE: Embeddings requires the "extras" feature to be installed
|
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# Install it via "pip install .[extras]"
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embeddings:
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# Overrides directory to look for embedding models (default: models)
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embedding_model_dir: models
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# Device to load embedding models on (default: cpu)
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# Possible values: cpu, auto, cuda
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# NOTE: It's recommended to load embedding models on the CPU.
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# If you'd like to load on an AMD gpu, set this value to "cuda" as well.
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embeddings_device: cpu
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# The below parameters only apply for initial loads
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225 |
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# All API based loads do NOT inherit these settings unless specified in use_as_default
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226 |
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# An initial embedding model to load on the infinity backend (default: None)
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special_tokens_map.json
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{
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"bos_token": {
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"content": "<s>",
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+
"lstrip": false,
|
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"normalized": false,
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"rstrip": false,
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"single_word": false
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"eos_token": {
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"content": "</s>",
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"lstrip": false,
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"normalized": false,
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"rstrip": false,
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"single_word": false
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},
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"unk_token": {
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"content": "<unk>",
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"lstrip": false,
|
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+
"normalized": false,
|
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+
"rstrip": false,
|
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+
"single_word": false
|
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+
}
|
23 |
+
}
|
tokenizer.json
ADDED
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|
|
tokenizer.model
ADDED
@@ -0,0 +1,3 @@
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|
|
|
|
|
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|
|
1 |
+
version https://git-lfs.github.com/spec/v1
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|
tokenizer_config.json
ADDED
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|
upload.py
ADDED
@@ -0,0 +1,45 @@
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|
1 |
+
from huggingface_hub import HfApi
|
2 |
+
from pathlib import Path
|
3 |
+
|
4 |
+
# Define the parameters for uploading
|
5 |
+
repo_id = "DBMe/Behemoth-123B-v1.1-2.85bpw-h6-exl2" # Replace with your actual repo ID
|
6 |
+
folder_path = "/home/asusws-x570-ace/programs/tabbyAPI/models/Behemoth-123B-v1.1_exl2_2.85bpw/" # Replace with your folder path
|
7 |
+
repo_type = "model" # Change to "model" or "space" if applicable
|
8 |
+
revision = "main" # Optional: specify the branch or use "main"
|
9 |
+
private = False # Set to True if the repository should be private
|
10 |
+
allow_patterns = None # Optional: specify patterns of files to include
|
11 |
+
ignore_patterns = None # Optional: specify patterns of files to exclude
|
12 |
+
num_workers = 1 # Set based on your system; lower if your internet is unstable
|
13 |
+
print_report = True # Enable progress reporting
|
14 |
+
print_report_every = 60 # Report frequency in seconds
|
15 |
+
|
16 |
+
# Initialize the Hugging Face API client
|
17 |
+
api = HfApi()
|
18 |
+
|
19 |
+
# Function to upload the folder in a resumable manner
|
20 |
+
def upload_resumable():
|
21 |
+
try:
|
22 |
+
print("Starting upload process...")
|
23 |
+
|
24 |
+
# Perform the upload with the provided parameters
|
25 |
+
api.upload_large_folder(
|
26 |
+
repo_id=repo_id,
|
27 |
+
folder_path=Path(folder_path),
|
28 |
+
repo_type=repo_type,
|
29 |
+
revision=revision,
|
30 |
+
private=private,
|
31 |
+
allow_patterns=allow_patterns,
|
32 |
+
ignore_patterns=ignore_patterns,
|
33 |
+
num_workers=num_workers,
|
34 |
+
print_report=print_report,
|
35 |
+
print_report_every=print_report_every,
|
36 |
+
)
|
37 |
+
|
38 |
+
print("Upload completed successfully!")
|
39 |
+
|
40 |
+
except Exception as e:
|
41 |
+
print(f"Upload interrupted due to error: {e}")
|
42 |
+
print("You can resume the upload by running the script again.")
|
43 |
+
|
44 |
+
# Call the function to start the upload
|
45 |
+
upload_resumable()
|